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Conservative Tests under Satisficing Models of Publication Bias

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  • Justin McCrary
  • Garret Christensen
  • Daniele Fanelli

Abstract

Publication bias leads consumers of research to observe a selected sample of statistical estimates calculated by producers of research. We calculate critical values for statistical significance that could help to adjust after the fact for the distortions created by this selection effect, assuming that the only source of publication bias is file drawer bias. These adjusted critical values are easy to calculate and differ from unadjusted critical values by approximately 50%—rather than rejecting a null hypothesis when the t-ratio exceeds 2, the analysis suggests rejecting a null hypothesis when the t-ratio exceeds 3. Samples of published social science research indicate that on average, across research fields, approximately 30% of published t-statistics fall between the standard and adjusted cutoffs.

Suggested Citation

  • Justin McCrary & Garret Christensen & Daniele Fanelli, 2016. "Conservative Tests under Satisficing Models of Publication Bias," PLOS ONE, Public Library of Science, vol. 11(2), pages 1-10, February.
  • Handle: RePEc:plo:pone00:0149590
    DOI: 10.1371/journal.pone.0149590
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    References listed on IDEAS

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    Cited by:

    1. Isaiah Andrews & Maximilian Kasy, 2019. "Identification of and Correction for Publication Bias," American Economic Review, American Economic Association, vol. 109(8), pages 2766-2794, August.
    2. Christopher Snyder & Ran Zhuo, 2018. "Sniff Tests as a Screen in the Publication Process: Throwing out the Wheat with the Chaff," NBER Working Papers 25058, National Bureau of Economic Research, Inc.
    3. Snyder, Christopher & Zhuo, Ran, 2018. "Sniff Tests in Economics: Aggregate Distribution of Their Probability Values and Implications for Publication Bias," MetaArXiv 8vdrh, Center for Open Science.
    4. Furukawa, Chishio, 2019. "Publication Bias under Aggregation Frictions: Theory, Evidence, and a New Correction Method," EconStor Preprints 194798, ZBW - Leibniz Information Centre for Economics.
    5. Andrew Y. Chen, 2022. "Do t-Statistic Hurdles Need to be Raised?," Papers 2204.10275, arXiv.org, revised Apr 2024.

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